I. Mayanja, Laudia Anokye-Bempah, Musdalifa Parwoth, J. Dhikusooka, I. Oluk
{"title":"Re-Imagining the Cooling Systems for Markets in Developing Countries: A Conceptual Analysis of a Footstep Powered Cooler","authors":"I. Mayanja, Laudia Anokye-Bempah, Musdalifa Parwoth, J. Dhikusooka, I. Oluk","doi":"10.56557/jafsat/2023/v10i38329","DOIUrl":null,"url":null,"abstract":"Preserving perishable food items like fruits and vegetables in local markets of developing countries is a significant challenge due to the lack of affordable and sustainable cooling solutions, resulting in high food loss, economic burden, and environmental waste. This paper presents a conceptual analysis of a footstep-powered cooler (FPC) system that harnesses the energy generated from footstep movement to power refrigeration systems. The study developed a Minimal Viable Product (MVP) consisting of a piezoelectric plate connected to a voltage doubler circuit to measure the energy generated per step. Results showed that a single footstep on a 0.15 x 0.15 m tile with four piezoelectric plates connected in series generated 0.8 J of energy. However, when extrapolated to the scale of a market, the energy generated from footsteps fell significantly short of the energy requirements for refrigeration. The study suggests optimizing tile placement, exploring other piezoelectric materials, and improving energy extraction efficiency through circuit modifications as potential strategies to enhance energy output to meet the required energy demands. While footstep-generated energy alone may not be sufficient, it represents a promising and sustainable approach to preserving perishable food in local markets, reducing food loss, and improving overall efficiency in the food supply chain.","PeriodicalId":275882,"journal":{"name":"Journal of Advances in Food Science & Technology","volume":"143 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-08-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Advances in Food Science & Technology","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.56557/jafsat/2023/v10i38329","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Preserving perishable food items like fruits and vegetables in local markets of developing countries is a significant challenge due to the lack of affordable and sustainable cooling solutions, resulting in high food loss, economic burden, and environmental waste. This paper presents a conceptual analysis of a footstep-powered cooler (FPC) system that harnesses the energy generated from footstep movement to power refrigeration systems. The study developed a Minimal Viable Product (MVP) consisting of a piezoelectric plate connected to a voltage doubler circuit to measure the energy generated per step. Results showed that a single footstep on a 0.15 x 0.15 m tile with four piezoelectric plates connected in series generated 0.8 J of energy. However, when extrapolated to the scale of a market, the energy generated from footsteps fell significantly short of the energy requirements for refrigeration. The study suggests optimizing tile placement, exploring other piezoelectric materials, and improving energy extraction efficiency through circuit modifications as potential strategies to enhance energy output to meet the required energy demands. While footstep-generated energy alone may not be sufficient, it represents a promising and sustainable approach to preserving perishable food in local markets, reducing food loss, and improving overall efficiency in the food supply chain.
在发展中国家的当地市场保存水果和蔬菜等易腐食品是一项重大挑战,因为缺乏负担得起和可持续的冷却解决方案,导致大量粮食损失、经济负担和环境浪费。本文提出了一个概念分析的脚步动力冷却器(FPC)系统,利用能量产生的脚步运动,以动力制冷系统。该研究开发了一种最小可行产品(MVP),由连接到电压倍增电路的压电板组成,用于测量每一步产生的能量。结果表明,在一块由4块压电板串联而成的0.15 x 0.15 m的瓷砖上,单脚行走产生0.8 J的能量。然而,当外推到市场规模时,脚步声产生的能量远远低于制冷所需的能量。该研究建议优化瓷砖放置,探索其他压电材料,并通过电路修改提高能量提取效率,作为提高能量输出以满足所需能源需求的潜在策略。虽然仅靠步行产生的能源可能还不够,但它代表了一种有前途的可持续方法,可以在当地市场上保存易腐食品,减少粮食损失,提高食品供应链的整体效率。